TY - JOUR
T1 - Lithium Metal Batteries with a Bone-Inspired Solid-Sol Electrolyte Based on Natural CaF2
AU - Liu, Shuohan
AU - Zhang, Shaojie
AU - Chi, Feng
AU - Tian, Wensheng
AU - Kong, Lingti
AU - Liu, Pan
AU - Pan, Hui
AU - Quan, Hengdao
AU - Zhu, Shenmin
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/6/9
Y1 - 2026/6/9
N2 - Inspired by the perfect integration of structure and function in mammalian bone, a general strategy for achieving high performance solid-sol electrolyte in lithium metal batteries is developed by utilizing naturally abundant calcium fluoride (CaF2) as the inorganic matrix. With a small amount of organic solvent (only 12.8 wt %), a continuous ion transport network is established through multilevel nonbonding interactions between inorganic CaF2 and organic solvent. While CaF2 matrix offers excellent stability and robust mechanical support, the organic electrolyte network ensures high ionic conductivity and intimate interfacial contact. Furthermore, an integrated solid–electrolyte interphase enriched with LiF and Li–Ca alloy is generated via in situ reaction between the CaF2 matrix and Li, leading to remarkably enhanced interfacial reaction kinetics and greatly suppressed Li dendrite growth. Consequently, the solid-sol electrolyte exhibits a wide electrochemical window of 5.26 V and a high Li+ transference number of 0.77 at room temperature. When matching LiFePO4 cathodes, the batteries enable stable cycling over 200 cycles even at elevated temperatures up to 100 °C. Also, the created solid-sol electrolyte based on inorganic CaF2 displays an interesting flame-retardant property. Notably, this strategy demonstrates extensibility to diverse liquid electrolytes, allowing straightforward tuning of solid-sol electrolyte properties for targeted performance optimization.
AB - Inspired by the perfect integration of structure and function in mammalian bone, a general strategy for achieving high performance solid-sol electrolyte in lithium metal batteries is developed by utilizing naturally abundant calcium fluoride (CaF2) as the inorganic matrix. With a small amount of organic solvent (only 12.8 wt %), a continuous ion transport network is established through multilevel nonbonding interactions between inorganic CaF2 and organic solvent. While CaF2 matrix offers excellent stability and robust mechanical support, the organic electrolyte network ensures high ionic conductivity and intimate interfacial contact. Furthermore, an integrated solid–electrolyte interphase enriched with LiF and Li–Ca alloy is generated via in situ reaction between the CaF2 matrix and Li, leading to remarkably enhanced interfacial reaction kinetics and greatly suppressed Li dendrite growth. Consequently, the solid-sol electrolyte exhibits a wide electrochemical window of 5.26 V and a high Li+ transference number of 0.77 at room temperature. When matching LiFePO4 cathodes, the batteries enable stable cycling over 200 cycles even at elevated temperatures up to 100 °C. Also, the created solid-sol electrolyte based on inorganic CaF2 displays an interesting flame-retardant property. Notably, this strategy demonstrates extensibility to diverse liquid electrolytes, allowing straightforward tuning of solid-sol electrolyte properties for targeted performance optimization.
KW - bioinspired
KW - high safety
KW - lithium metal batteries
KW - solid-sol electrolytes
KW - wide-temperature
UR - https://www.scopus.com/pages/publications/105041345487
U2 - 10.1021/acsnano.6c03537
DO - 10.1021/acsnano.6c03537
M3 - Article
AN - SCOPUS:105041345487
SN - 1936-0851
VL - 20
SP - 16253
EP - 16263
JO - ACS Nano
JF - ACS Nano
IS - 22
ER -